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Tissue-nonspecific alkaline phosphatase promotes axonal growth of hippocampal neurons

机译:组织非特异性碱性磷酸酶促进海马神经元轴突生长

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Axonal growth is essential for establishing neuronal circuits during brain development and for regenerative processes in the adult brain. Unfortunately, the extracellular signals controlling axonal growth are poorly understood. Here we report that a reduction in extracellular ATP levels by tissue-nonspecific alkaline phosphatase (TNAP) is essential for the development of neuritic processes by cultured hippocampal neurons. Selective blockade of TNAP activity with levamisole or specific TNAP knockdown with short hairpin RNA interference inhibited the growth and branching of principal axons, whereas addition of alkaline phosphatase (ALP) promoted axonal growth. Neither activation nor inhibition of adenosine receptors affected the axonal growth, excluding the contribution of extracellular adenosine as a potential hydrolysis product of extracellular ATP to the TNAP-mediated effects. TNAP was colocalized at axonal growth cones with ionotropic ATP receptors (P2X7 receptor), whose activation inhibited axonal growth. Additional analyses suggested a close functional interrelation of TNAP and P2X7 receptors whereby TNAP prevents P2X7 receptor activation by hydrolyzing ATP in the immediate environment of the receptor. Furthermore inhibition of P2X7 receptor reduced TNAP expression, whereas addition of ALP enhanced P2X7 receptor expression. Our results demonstrate that TNAP, regulating both ligand availability and protein expression of P2X7 receptor, is essential for axonal development.
机译:轴突生长对于在大脑发育过程中建立神经元回路以及在成年大脑中进行再生过程至关重要。不幸的是,控制轴突生长的细胞外信号知之甚少。在这里,我们报道组织非特异性碱性磷酸酶(TNAP)降低细胞外ATP水平对于培养的海马神经元神经突发育至关重要。左旋咪唑对TNAP活性的选择性阻断或短发夹RNA干扰对特定TNAP的抑制作用抑制了主要轴突的生长和分支,而碱性磷酸酶(ALP)的添加促进了轴突的生长。腺苷受体的活化和抑制都不会影响轴突的生长,除了将胞外腺苷作为胞外ATP潜在的水解产物对TNAP介导的作用的贡献外。 TNAP与离子型ATP受体(P2X 7 受体)共定位在轴突生长锥处,后者的激活抑制了轴突的生长。进一步的分析表明,TNAP和P2X 7 受体的功能密切相关,从而TNAP通过在受体的周围环境中水解ATP来阻止P2X 7 受体的活化。进一步抑制P2X 7 受体可降低TNAP表达,而添加ALP可增强P2X 7 受体的表达。我们的结果表明,TNAP调节P2X 7 受体的配体利用率和蛋白表达,对于轴突发育至关重要。

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